Claims
- 1. A method of performing a plurality of biochemical assays using a plurality of electrodes comprising the steps of:
applying electrical energy between first and second electrodes of said plurality of electrodes; measuring an assay dependent signal at said second electrode; applying electrical energy between said second electrode and a third electrode of said plurality of electrodes; and measuring an assay dependent signal at said third electrode.
- 2. The method according to claim 1 wherein said assay dependent signal is selected from the group consisting of electrical current, electrical potential and electrode-induced luminescence.
- 3. The method according to claim 2 wherein said assay dependent signal is electrochemiluminescence.
- 4. The method according to claim 1, said second electrode having a second electrode assay reagent immobilized thereon and said third electrode having a third electrode assay reagent immobilized thereon.
- 5. The method according to claim 4 wherein said second electrode assay reagent and said third electrode assay reagent are binding reagents each specific for a different analyte of interest.
- 6. The method according to claim 1 wherein said plurality of electrodes are arranged within a flow cell, said flow cell having a flow cell path.
- 7. The method according to claim 6 wherein said plurality of electrodes are arranged sequentially.
- 8. The method according to claim 1 wherein said first electrode is adjacent said second electrode and said second electrode is adjacent said third electrode.
- 9. The method according to claim 1 wherein said plurality of electrodes are arranged within a single detection chamber.
- 10. The method according to claim 1 wherein said plurality of electrodes are printed carbon ink.
- 11. The method according to claim 4 wherein said assay reagents are present within an assay domain defined by a dielectric layer on said electrodes.
- 12. The method according to claim 6 wherein:
said first, second and third electrodes having first, second and third electrical leads for supplying electrical energy to said electrodes; and said flow cell being in fluid communication with an inlet conduit at least partially defined by exposed surfaces of said first and third electrical leads, wherein fluid in said inlet conduit is in electrical contact with said exposed surfaces, the method further comprising the step of applying an inlet conduit interrogation potential between said exposed surfaces to determine the presence or composition of fluid in said inlet conduit.
- 13. The method according to claim 12 wherein said interrogation potential is of insufficient magnitude to induce electrochemiluminescence at said first or third electrodes.
- 14. The method according to claim 1, further comprising the steps of:
applying electrical energy between said third electrode and a fourth electrode of said plurality of electrodes; and measuring an assay dependent signal at said fourth electrode.
- 15. An apparatus for performing a plurality of biochemical assays comprising:
a plurality of electrodes comprising at least one dedicated working electrode, at least one dual-role electrode and at least one dedicated counter electrode, said dedicated working and dual-role electrodes having deposited thereon an assay reagent, wherein said dual-role electrode is configured to operate first as the working electrode and then as the counter electrode.
- 16. The apparatus according to claim 15, wherein said assay reagent is a binding reagent specific for an analyte of interest.
- 17. The apparatus according to claim 16 wherein said binding reagent is different for each of said dedicated working and dual-role electrodes.
- 18. The apparatus according to claim 15 wherein said plurality of electrodes are arranged within a flow cell, said flow cell having a flow cell path.
- 19. The apparatus according to claim 18 wherein said plurality of electrodes are arranged along said flow cell path.
- 20. The apparatus according to claim 15 wherein said dedicated counter electrode is adjacent said dual-role electrode and said dual-role electrode is adjacent said dedicated working electrode.
- 21. The apparatus according to claim 15 wherein said plurality of electrodes are arranged within a single detection chamber.
- 22. The apparatus according to claim 5 wherein said plurality of electrodes are printed carbon ink.
- 23. The apparatus according to claim 16 wherein said assay reagents are present within an assay domain defined by a dielectric layer on said dedicated working and dual-role electrodes.
- 24. The apparatus according to claim 18 further comprising:
dedicated working, dual-role and dedicated counter electrical leads for supplying electrical energy to said plurality of electrodes, wherein at least two non-adjacent electrical leads have an exposed surface located thereon; an inlet conduit in fluid communication with said flow cell and at least partially defined by said exposed surfaces of said electrical leads, wherein fluid in said inlet conduit is in electrical contact with said exposed surfaces, wherein the exposed surfaces are configured to apply an inlet conduit interrogation potential between said exposed surfaces to determine the presence or composition of fluid in said inlet conduit.
- 25. The apparatus according to claim 24 wherein said exposed surfaces are further configured such that the applied interrogation potential is of insufficient magnitude to induce electrochemiluminescence at the corresponding electrodes.
- 26. The apparatus according to claim 15 further comprising an optical detector for detecting luminescence generated at said dedicated working and dual-role electrodes.
- 27. The apparatus according to claim 15 further comprising a voltmeter for measuring potentials at said dedicated working and dual-role electrodes.
- 28. The apparatus according to claim 15 further comprising an ammeter for measuring electrical current at said dedicated working and dual-role electrodes.
- 29. A cartridge for conducting a plurality of assays, comprising:
a flow cell having an inlet, an outlet and a detection chamber, the inlet, detection chamber and outlet defining a flow path through the flow cell, said detection chamber comprising:
a plurality of electrodes wherein at least a first electrode has a first assay reagent immobilized thereon, said electrodes being arranged in a one-dimensional array along the flow path; a plurality of electrical leads for supplying electrical energy to said plurality of electrodes;
- 30. The cartridge of claim 29 further comprising a second electrode having a second assay reagent immobilized thereon, said second electrode being arranged adjacent to said first electrode.
- 31. The cartridge of claim 29 wherein said plurality of electrodes comprise carbon ink.
- 32. The cartridge of claim 29, said detection chamber further comprising at least one detection chamber surface, wherein at least a portion of said detection chamber surface is transparent.
- 33. The cartridge of claim 29 further comprising an optical detector adapted and arranged to detect luminescence from said detection chamber.
- 34. A method of performing a plurality of assays comprising measuring assay dependent signals using a plurality of electrodes, wherein at least one of said plurality of electrodes is used as a working electrode for measuring an assay dependent signal and, subsequently, as a counter electrode for measuring a different assay dependent signal at a different one of said plurality of electrodes.
- 35. The method of claim 34, wherein each of at least two of said plurality of electrodes is used as a working electrode for measuring an assay dependent signal and, subsequently, as a counter electrode for measuring a different assay dependent signal at a different one of said plurality of electrodes
- 36. The method of claim 34, wherein said plurality of electrodes comprises a dedicated counter electrode, a dedicated working electrode and two or more additional electrodes, each of which is used as a working electrode for measuring an assay dependent signal and, subsequently, as a counter electrode for measuring a different assay dependent signal at a different one of said plurality of electrodes.
- 37. A method of conducting an electrochemiluminescence measurement, said method comprising the steps of:
measuring the impedance between two electrodes in a measurement chamber to detect the presence of air bubbles, said measurement using electrical potentials that are insufficient for generating electrochemiluminescence at said electrodes; and inducing electrochemiluminescence at one of said two electrodes.
- 38. (canceled)
- 39. A method of depositing assay reagents on an electrode surface to form an assay domain, the method comprising the steps of:
dispensing a predetermined volume of said assay reagents on said electrode surface using impact-driven fluid spreading to coat a predefined region on said electrode surface, said predefined region having a predefined assay reagent area.
- 40-70 (canceled)
- 71. A method of forming a plurality of assay domains, the method comprising the steps of:
a. treating one of a plurality of predefined region of a surface with solution of a biotin-binding protein so as to form an adsorbed biotin-binding protein layer within said predefined region of said surface; b. treating said adsorbed biotin-binding protein layer with a solution comprising an assay reagent wherein said assay reagent is linked to biotin; and c. repeating steps a. and b. for each of said plurality of assay domains.
- 72-102 (canceled)
- 103. A method of forming a plurality of assay domains, the method comprising the steps of:
A. treating one of a plurality of predefined region of a surface with solution of a second binding partner so as to form an adsorbed second binding partner layer within said predefined region of said surface; B. treating said adsorbed second binding partner layer with a solution comprising an assay reagent wherein said assay reagent is linked to or comprises a first binding partner and wherein said first and second binding partners specifically bind each other; and C. repeating steps a. and b. for each of said plurality of assay domains.
- 104-119 (canceled)
- 120. A cartridge for conducting a plurality of assays, comprising:
a flow cell having an inlet, an outlet and a detection chamber, said inlet, detection chamber and outlet defining a flow path through the flow cell, said detection chamber comprising:
a plurality of working electrodes having assay reagents immobilized thereon, said electrodes being arranged in a one-dimensional array along the flow path; a common counter electrode.
- 121-134 (canceled)
- 135. An assay cartridge comprising:
a cartridge body having a first side and one or more first side cover layers mated to said first side such that said cartridge body and said first side cover layers define one or more first side fluidic networks therebetween, wherein said assay cartridge includes a sample chamber having a sample introduction port with a sealable closure, a sample chamber vent port connected to said sample chamber; a first waste chamber, a first waste chamber vent port connected to said waste chamber and a first detection chamber connected to said sample chamber by a first sample conduit and to said first waste chamber by a first waste conduit.
- 136. The assay cartridge of claim 135, said cartridge body further comprising a second side and one or more second side cover layers mated to said second side, said cartridge body and said second side cover layers defining one or more second side fluidic networks therebetween,
wherein said cartridge body has at least one through-hole that provides fluidic communication between said first and second side fluidic networks.
- 137. The assay cartridge of claim 136, wherein at least one of said fluidic networks is defined, at least in part, by recesses in said cartridge body and/or said cover layers.
- 138. The assay cartridge of claim 136, further comprising a gasket having one or more apertures, said gasket disposed between said cartridge body and at least one of said cover layers and wherein at least one of said fluidic networks is defined, at least in part, by said apertures.
- 139-161 (canceled)
- 162. An assay cartridge for analyzing a sample collected with an applicator stick comprising a shaft and a sample collection head, said cartridge comprising
a sample chamber having an elongated cavity that has a first elongated region and a second elongated region, said regions oriented at an angle with respect to each other, wherein said angle is selected to bend said shaft upon insertion of said applicator stick into said sample chamber and promote fracture of said shaft.
- 163-166 (canceled)
- 167. An assay cartridge comprising
an extraction reagent chamber for holding an extraction reagent; a sample chamber adapted to receive an applicator stick, said sample chamber connected to said extraction reagent chamber by an extraction reagent conduit, said sample chamber having a sample introduction port with a sealable closure; a first detection chamber connected to said sample chamber by a first sample conduit.
- 168-176 (canceled)
- 177. A method of performing a cartridge based assay, said cartridge comprising
a sample chamber having a sample chamber vent port, said sample chamber connected to a sample conduit having a first sample conduit branch containing a first dry reagent, a first waste chamber, a first waste chamber vent port connected to said waste chamber; a first detection chamber connected to said sample chamber by said first sample conduit branch and to said first waste chamber by a first waste conduit; a first reagent chamber containing a volume of a first liquid reagent, said first reagent chamber being connected to said sample conduit through a first reagent conduit; a first reagent chamber vent port connected to said first reagent chamber; an air vent port connected to said sample conduit or said first reagent conduit; said method comprising moving said sample from said sample chamber into said first sample conduit branch; reconstituting said first dry reagent in said sample; moving a slug of said sample having a predetermined volume into said first detection chamber; and moving said sample in said first detection chamber into said first waste chamber; moving said first liquid reagent into said first detection chamber; measuring a signal from said first detection chamber.
- 178-199 (canceled)
- 200. A method of performing a cartridge based assay, said cartridge comprising
a sample chamber having a sample chamber vent port, said sample chamber connected to a sample conduit comprising a first dry reagent, a first waste chamber connected through a first waste chamber conduit to said sample conduit, a first waste chamber vent port connected to said waste chamber; a first reagent chamber containing a volume of a first liquid reagent; a first reagent chamber vent port connected to said first reagent chamber; a first detection chamber connected to said sample chamber by said sample conduit and to said first reagent chamber by a first reagent chamber conduit; an air vent port connected to said sample conduit or said first reagent conduit; said method comprising
moving said sample from said sample chamber into said first sample conduit; reconstituting said first dry reagent in said sample; moving a first slug of said sample having a predetermined volume into said first detection chamber; and moving said sample in said first detection chamber into said first waste chamber; moving said first liquid reagent into said first detection chamber; measuring a signal from said first detection chamber.
- 201-207 (canceled)
- 208. A method for preparing sample for analysis comprising
inserting an applicator stick used to collect a sample into a cartridge comprising a sample chamber, said applicator stick comprising a shaft and a sample collection head; breaking the shaft of said applicator stick into a shaft segment and a head segment; sealing said head segment in said sample chamber.
- 209-224 (canceled)
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority to U.S. Provisional Application No. 60/436,569, filed Dec. 26, 2002, which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60436569 |
Dec 2002 |
US |